Standing Variations Modeling Captures Inter-Individual Heterogeneity in a Deterministic Model of Prostate Cancer

Harsh Vardhan Jain1, Inmaculada C Sorribes2, Samuel K Handelman3

  • 1Department of Mathematics & Statistics, University of Minnesota Duluth, Duluth, MN 55812, USA.

Cancers
|April 30, 2021
PubMed

Insights

Sipuleucel-T (Provenge) offers modest survival benefits for advanced prostate cancer. A new modeling approach, Standing Variations Modeling, explains limited efficacy and predicts optimal combination strategies for this cancer immunotherapy.

Area of Science:

  • Oncology
  • Immunology
  • Mathematical Biology

Background:

  • Sipuleucel-T (Provenge) is an FDA-approved immunotherapy for advanced, hormone-refractory prostate cancer.
  • The modest survival benefit and optimal combination with androgen depletion therapy (ADT) remain unclear.

Purpose of the Study:

  • To develop a mechanistic model for advanced prostate cancer response to Sipuleucel-T and ADT.
  • To investigate inter-individual heterogeneity using Standing Variations Modeling.
  • To predict optimal combination regimens for enhanced efficacy.

Main Methods:

  • Employed a nonlinear dynamical systems approach to model cancer response.
  • Incorporated immune response to vaccination and ADT effects.
  • Utilized Standing Variations Modeling to capture parameter inestimability and heterogeneity.
  • Inferred parameter distributions from mouse xenograft data.

Main Results:

  • Model simulations explain the limited clinical success of Sipuleucel-T.
  • Identified critical parameters for tumor growth and immune response.
  • Predicted an optimal combination regimen to maximize treatment efficacy.

Conclusions:

  • Standing Variations Modeling effectively captures heterogeneity in cancer immunotherapy response.
  • The approach provides a framework for optimizing Sipuleucel-T and other emerging immunotherapies.
  • This modeling strategy can generalize to various cancer immunotherapies.

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